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A SHOX2 loss-of-function mutation underlying familial atrial fibrillation
Ning Li1, Zhang-Sheng Wang2, Xin-Hua Wang3
1Department of Cardiology, Shanghai Chest Hospital, Shanghai Jiao Tong University, 241 West Huaihai Road, Shanghai 200030, China.
Insights
A novel mutation in the SHOX2 gene was identified in patients with familial atrial fibrillation (AF). This loss-of-function mutation increases susceptibility to AF, offering new insights into its genetic causes.
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- Atrial fibrillation (AF) is a common arrhythmia linked to increased mortality.
- Genetic factors are implicated in familial AF, but causative genes are often unknown.
- SHOX2 is crucial for cardiac conduction system development and function.
Purpose of the Study:
- To investigate the genetic basis of familial AF.
- To identify novel genetic variants associated with AF pathogenesis.
- To functionally characterize the role of SHOX2 in AF susceptibility.
Main Methods:
- Sequencing of the SHOX2 gene in 162 familial AF patients and 238 controls.
- Pedigree analysis to confirm co-segregation of mutations with AF.
- Dual-luciferase reporter assays to assess SHOX2 protein function.
Main Results:
- A novel heterozygous nonsense mutation (c.580C>T or p.R194X) in SHOX2 was identified in an AF patient.
- The mutation was absent in 476 control chromosomes and co-segregated with AF in the family.
- The mutant SHOX2 protein exhibited no transcriptional activity, indicating loss-of-function.
Conclusions:
- This study reports the first association between SHOX2 loss-of-function mutation and familial AF susceptibility.
- The findings provide new molecular insights into AF pathogenesis.
- This discovery has implications for genetic counseling and personalized AF management.
Abstract:
Atrial fibrillation (AF), as the most common sustained cardiac arrhythmia, is associated with substantially increased morbidity and mortality. Aggregating evidence demonstrates that genetic defects play a crucial role in the pathogenesis of AF, especially in familial AF. Nevertheless, AF is of pronounced genetic heterogeneity, and in an overwhelming majority of cases the genetic determinants underlying AF remain elusive. In the current study, 162 unrelated patients with familial AF and 238 unrelated healthy individuals served as controls were recruited. The coding exons and splicing junction sites of the SHOX2 gene, which encodes a homeobox-containing transcription factor essential for proper development and function of the cardiac conduction system, were sequenced in all study participants. The functional effect of the mutant SHOX2 protein was characterized with a dual-luciferase reporter assay system. As a result, a novel heterozygous SHOX2 mutation, c.580C>T or p.R194X, was identified in an index patient, which was absent from the 476 control chromosomes. Genetic analysis of the proband's pedigree revealed that the nonsense mutation co-segregated with AF in the family with complete penetrance. Functional assays demonstrated that the mutant SHOX2 protein had no transcriptional activity compared with its wild-type counterpart. In conclusion, this is the first report on the association of SHOX2 loss-of-function mutation with enhanced susceptibility to familial AF, which provides novel insight into the molecular mechanism underpinning AF, suggesting potential implications for genetic counseling and individualized management of AF patients.
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